Area of research
Polymers and Plastics · Materials Chemistry
Research interest
Research interests include Transition Metal Oxide Nanomaterials, Covalent Organic Framework Applications, Metal-Organic Frameworks: Synthesis and Applications, and Gas Sensing Nanomaterials and Sensors.
In-situ construction of 3D/2D ZnIn2S4/Ni-MOLs: Highly efficient visible-light-driven photocatalytic heterojunction in hydrogen evolution
Rational design of covalent organic frameworks/NaTaO3 S-scheme heterostructure for enhanced photocatalytic hydrogen evolution
Dipole field as charge-transfer bridge between Cu atomic clusters/PtCu alloy nanocubes and nitrogen-rich C3N5 for superior photocatalytic hydrogen evolution
Robust construction of CdSe nanorods@Ti3C2 MXene nanosheet for superior photocatalytic H2 evolution
Facile construction of a robust CuS@NaNbO3 nanorod composite: A unique p-n heterojunction structure with superior performance in photocatalytic hydrogen evolution
Donor–Acceptor‐Type Organic‐Small‐Molecule‐Based Solar‐Energy‐Absorbing Material for Highly Efficient Water Evaporation and Thermoelectric Power Generation
<i>In situ</i> encapsulation of Co-based nanoparticles into nitrogen-doped carbon nanotubes-modified reduced graphene oxide as an air cathode for high-performance Zn–air batteries
Insight into the Synergism between Copper Species and Surface Defects Influenced by Copper Content over Copper/Ceria Catalysts for the Hydrogenation of Carbonate
Investigation of Activated‐Carbon‐Supported Copper Catalysts with Unique Catalytic Performance in the Hydrogenation of Dimethyl Oxalate to Methyl Glycolate
Reaction temperature controlled selective hydrogenation of dimethyl oxalate to methyl glycolate and ethylene glycol over copper-hydroxyapatite catalysts
Activation of the Ano1 (TMEM16A) chloride channel by calcium is not mediated by calmodulin
Enhanced catalytic performance for SiO2–TiO2 binary oxide supported Cu-based catalyst in the hydrogenation of dimethyloxalate
Explaining Calcium-Dependent Gating of Anoctamin-1 Chloride Channels Requires a Revised Topology
Anoctamin 1 (Tmem16A) Ca <sup>2</sup> <sup>+</sup> -activated chloride channel stoichiometrically interacts with an ezrin–radixin–moesin network